Ye Xing, Liu Renyi, Qiao Zhixian, Chai Xiaocui, Wang Yan
School of Physical Education, China University of Geosciences (Wuhan), Wuhan, China.
Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, China.
Front Physiol. 2023 Oct 6;14:1273342. doi: 10.3389/fphys.2023.1273342. eCollection 2023.
This study aims to explore the molecular regulatory mechanisms of acute exercise in the skeletal muscle of mice. Male C57BL/6 mice were randomly assigned to the control group, and the exercise group, which were sacrificed immediately after an acute bout of exercise. The study was conducted to investigate the metabolic and transcriptional profiling in the quadriceps muscles of mice. The results demonstrated the identification of 34 differentially expressed metabolites (DEMs), with 28 upregulated and 6 downregulated, between the two groups. Metabolic pathway analysis revealed that these DEMs were primarily enriched in several, including the citrate cycle, propanoate metabolism, and lysine degradation pathways. In addition, the results showed a total of 245 differentially expressed genes (DEGs), with 155 genes upregulated and 90 genes downregulated. KEGG analysis indicated that these DEGs were mainly enriched in various pathways such as ubiquitin mediated proteolysis and FoxO signaling pathway. Furthermore, the analysis revealed significant enrichment of DEMs and DEGs in signaling pathways such as protein digestion and absorption, ferroptosis signaling pathway. In summary, the identified multiple metabolic pathways and signaling pathways were involved in the exercise-induced physiological regulation of skeletal muscle, such as the TCA cycle, oxidative phosphorylation, protein digestion and absorption, the FoxO signaling pathway, ubiquitin mediated proteolysis, ferroptosis signaling pathway, and the upregulation of KLF-15, FoxO1, MAFbx, and MuRF1 expression could play a critical role in enhancing skeletal muscle proteolysis.
本研究旨在探讨急性运动对小鼠骨骼肌的分子调控机制。将雄性C57BL/6小鼠随机分为对照组和运动组,急性运动后立即处死。本研究旨在调查小鼠股四头肌的代谢和转录谱。结果表明,两组之间鉴定出34种差异表达代谢物(DEM),其中28种上调,6种下调。代谢途径分析表明,这些DEM主要富集在几个途径中,包括柠檬酸循环、丙酸代谢和赖氨酸降解途径。此外,结果显示共有245个差异表达基因(DEG),其中155个基因上调,90个基因下调。KEGG分析表明,这些DEG主要富集在泛素介导的蛋白水解和FoxO信号通路等各种途径中。此外,分析显示DEM和DEG在蛋白质消化吸收、铁死亡信号通路等信号通路中显著富集。总之,所鉴定的多种代谢途径和信号通路参与了运动诱导的骨骼肌生理调节,如三羧酸循环、氧化磷酸化、蛋白质消化吸收、FoxO信号通路、泛素介导的蛋白水解、铁死亡信号通路,以及KLF-15、FoxO1、MAFbx和MuRF1表达的上调可能在增强骨骼肌蛋白水解中起关键作用。